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I'm trying to read a map from a text file and create a string array according to the number of rows and columns in the map. Every cell in the grid is a 2 character string.

For instance,

**--**--**--
--**--**--**

should create a 2*6 matrix. The number of rows and columns are ROWS and COLS respectively. I used

char ***map = malloc(ROWS * sizeof(char *));
for (i = 0; i < ROWS; i++) 
{
    map[i] = malloc(COLS * sizeof(char) *  2);
}

But when I try to use a map[x][y], it will segfault.

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5 Answers 5

up vote 1 down vote accepted

char ***map; could be interpreted as an "Array of arrays of strings", so the inner array actually contains char pointers. Therefore, your loop needs to look like this:

for(i = 0; i < ROWS; i++) {
    int j;

    map[i] = malloc(COLS * sizeof(char*));
    for(j = 0; j < COLS; j++) map[i][j] = malloc(3 * sizeof(char)); // 3 chars because a string has to be terminated by \0
}

Alternatively, you could declare map as char **map, then your initialization code would work, but then you'd need to use map[i][j] and map[i][j+1] to access the elements of the individual cells.

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Tried this one, and it doesn't segfault now, but now it looks like the array is empty, or for some reason it's not printing anything. Doesn't seem to be the way I read the file into the array. pastebin.com/8Uu4fNJf –  user1002327 Feb 11 '12 at 23:51
    
Uh, filled the array manually and it looks like it's printing now. Well, I guess I should take care of the reading issue. –  user1002327 Feb 11 '12 at 23:54
    
About the reading issue: I used fgets to count the number of rows and columns in the map, and of course, it went until the EOF. So I had to restart the pointer position by closing and reopening the file, but I think there should be a more efficient way of doing it. –  user1002327 Feb 12 '12 at 2:41
1  
@user1002327 That's what fseek (or in your special case, rewind) is for. –  fnl Feb 12 '12 at 2:50
    
What an useful advice, thanks a lot. –  user1002327 Feb 12 '12 at 3:48

It could look like this:

int i, j, ROWS = 2, COLS = 6;
char ***map = malloc(ROWS * sizeof(char **));
for (i = 0; i < ROWS; ++i)
{
   map[i] = malloc(COLS * sizeof(char*));
   for (j = 0; j < COLS; ++j)
      map[i][j] = malloc(2 * sizeof(char));
}

Note that 2 chars allow you to store these characters, but it could cause you some troubles if you are going to work with them as a string (printf("%s, strcpy ...). In that case I would rather allocate memory for 3 chars so that terminating character can be stored as well.

Also note that you should clean this memory once it is allocated and cleaning should be done in reverse order according to allocation. It could look like this:

for (i = 0; i < ROWS; ++i)
{
   for (j = 0; j < COLS; ++j)
      free(map[i][j]);
   free(map[i]);
}
free(map);

Hope this helps.

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If you know that each string is only 2 characters, you don't necessarily need the 3rd character. –  Richard J. Ross III Feb 11 '12 at 23:41
    
@RichardJ.RossIII: Yes, 2 characters would be enough for storing them. But what if he wants to print them? He doesn't need to write own function for printing if terminating character is there... –  LihO Feb 11 '12 at 23:43
    
@RichardJ.RossIII : Anyway, that's a good point. I have edited my answer. –  LihO Feb 11 '12 at 23:55

The first line should be:

char **map = malloc(ROWS * sizeof(char *));

As a rule of thumb, add one * to the return type of malloc(). If you allocate an array of five ints with malloc(5 * sizeof(int)) then you would get back an int *.

Or, you can think of each * as adding a dimension—char * is a 1-D array of characters, and char ** is a 2-D array.

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If you want 2D array, way do you declare map as char***? Change it to char**.

(If I misunderstoop, and you want 2D array of char*, you should change the allocation, to use sizeof(char**) and sizeof(char*), and allocate memory to the string separately.)

Edit: If you know the size of the map when you declare it, make it char map[ROWS][COLS][2]; If you don't (or you want to simply pass it to another functions), you can declare it as char (**map)[2], and keep your allocations as they are.

(Change the 2 to 3 if you want to terminate them by \0 (To print it, for example))

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1  
It's a 2D array of strings, so I added the extra *. I'll see what happens with char**. –  user1002327 Feb 11 '12 at 23:33
    
Don't forget to allocate the memory to the string! –  asaelr Feb 11 '12 at 23:35
    
Sizeof char ** and sizeof char * is equivalent throughout a system. The size of one pointer type is always the same as another. –  Richard J. Ross III Feb 11 '12 at 23:42
    
@RichardJ.RossIII Generaly, 2 pointer types may have different size. Is there something special in such cases? –  asaelr Feb 11 '12 at 23:46
    
@asaelr no, what I mean is that the address of a block of memory is always the same size (generally 32 bit on 32 bit systems, and 64 bit on 64 bit systems). What the address actually points to, however, is another story. –  Richard J. Ross III Feb 12 '12 at 16:26

It needs to be

char ***map = malloc(ROWS * sizeof(char**));
for (i = 0; i < ROWS; i++) 
{
   map[i] = malloc(COLS * sizeof(char*));
   for (int j=0; i<COLS; ++j)
      map[i][j] = malloc(3*sizeof(char);
}

Edit: As pointed out in another answer and a comment, should be 3 not 2 malloc'ed chars.

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But if you know in advance that each entry is 2 characters, you might just want to make it a matrix of unsigned shorts and reinterpret where necessary, that might be less annoying overall. –  Matt Phillips Feb 11 '12 at 23:36
    
It may be better to malloc three characters, two for the string characters and one for the null terminator character. –  Alex Reynolds Feb 11 '12 at 23:41
    
Still segfaulting. This is the source code. pastebin.com/Z28gQmyy [-] –  user1002327 Feb 11 '12 at 23:42
    
@user1002327 Where? And try it with 3 instead of 2 in the last line (see edit above). –  Matt Phillips Feb 11 '12 at 23:53
    
Tried with 3, and it works now, thanks. –  user1002327 Feb 11 '12 at 23:58

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